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Accelerated imaging with segmented 2D pulses using parallel imaging and virtual coils

机译:使用并行成像和虚拟线圈的分段2D脉冲加速成像

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摘要

Large magnetic field inhomogeneity can be a significant cause of spatial flip-angle variation when using ordinary, limited-bandwidth RF pulses. Multidimensional RF pulses are particularly sensitive to inhomogeneity due to their extended pulse length, which decreases their bandwidth. Previously, it was shown that, by breaking a 2D pulse into multiple undersampled k-space segments, the excitation bandwidth can be increased at the expense of increased imaging time. The present study shows how this increased imaging time can be offset by undersampling acquisition k-space in a phase-encoded dimension that is in the direction of excitation segmentation. Data from each segment are viewed as originating from "virtual receive coils" rather than multiple physical coils. The undersampled data are reconstructed using parallel imaging techniques (e.g. as in GRAPPA). The method was tested in vivo with brain imaging at both 3 T and 4 T, and used in conjunction with a 32-channel head coil and conventional GRAPPA on the 3 T data. Relationships with existing techniques and future applications are discussed. (C) 2019 Elsevier Inc. All rights reserved.
机译:当使用普通的有限带宽RF脉冲时,大磁场不均匀性可以是空间翻转角度变化的显着原因。由于它们的扩展脉冲长度,多维rf脉冲对不均匀性特别敏感,这减少了它们的带宽。以前,示出了通过将2D脉冲断开到多个上采样的k空间段中,可以以增加的成像时间来增加激发带宽。本研究表明,通过在沿激发分割方向上的相位编码的尺寸中,通过向下采样k空间可以偏移这种增加的成像时间。来自每个段的数据被视为源自“虚拟接收线圈”而不是多个物理线圈。使用并行成像技术重建未采样的数据(例如,在GRAPPA中)。该方法在3T和4 T的体内用脑成像进行测试,并与32通道头圈和3T数据上的传统格拉卡一起使用。讨论了与现有技术和未来应用的关系。 (c)2019 Elsevier Inc.保留所有权利。

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